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Engineering Manager, Ads ML Efficiency

Lead a team of ML and systems engineers focused on model optimization, training/inference efficiency, and tooling for Ads ML at Reddit. Drive measurable wins in training time, latency, cost, and launch readiness while partnering with ranking and platform teams.

230k – 322kUnited StatesEngineering ManagementRemote7+ YOE

About the role

What you’ll do

  • Lead & Grow: Hire, mentor, and retain a high-performing team of ML engineers / systems-oriented engineers working on model optimization and ML efficiency.
  • Set Technical Direction: Define the roadmap for training optimization, inference optimization, launch-readiness tooling, and reusable efficiency primitives across Ads ML.
  • Deliver Measurable Wins: Drive reductions in model training time, online latency, serving cost, and infra-driven launch risk.
  • Build Systems and Tooling: Guide the development of profiling, benchmarking, load testing, observability, cost analysis, debugging, and efficiency certification systems.
  • Operate in the Critical Path: Partner with model owners and platform teams to accelerate high-priority launches and remove bottlenecks from the path to production.
  • Shape the Team’s Evolution: Balance near-term white-glove optimization work with medium-term platformization and automation.
  • Build XFN Alignment: Work closely with MLP, AMP, Ranking, and serving teams to clarify boundaries, upstream generic wins, and keep Ads needs on track.
  • Raise the Bar: Establish engineering rigor around measurement, performance debugging, launch safety, and technical decision-making for efficiency work.

What we’re looking for

  • Deep ML Engineering Experience: The candidate should have been close to the models themselves and understand training, serving, debugging, and optimization in depth.
  • Hands-on Optimization Background: Direct experience improving training loops, serving systems, profiling workflows, model/inference efficiency, or GPU utilization.
  • Strong Managerial Ability: Experience building and leading teams, coaching engineers, managing delivery, and making prioritization tradeoffs under ambiguity.
  • Distributed Systems Fluency: Proven ability to reason about production-scale ML systems and the tradeoffs that govern reliability, speed, cost, and scale.
  • Customer and Platform Instincts: Able to work as a service provider to modeling teams while still building reusable systems rather than only heroic one-offs.
  • Strong Communication: Can explain technical tradeoffs clearly to engineers, PMs, and senior stakeholders.
  • Ads experience: Experience in ads ranking, recommender systems, marketplace ML, or adjacent production ML domains is strongly preferred.

Nice-to-have

  • Experience with GPU training and serving migrations.
  • Experience with PyTorch, distributed training frameworks, or kernel/performance optimization.
  • Experience building efficiency benchmarking or launch certification frameworks.
  • Experience working in organizations where ML platform and applied modeling responsibilities are split across multiple teams.

Skills

Ml EngineeringModel OptimizationTraining OptimizationInference OptimizationGpu UtilizationDistributed SystemsPyTorchProfilingBenchmarkingLoad Testing

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